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首页> 外文期刊>Journal of biomedical optics >Optical oximetry of volume-oscillating vascular compartments: contributions from oscillatory blood flow
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Optical oximetry of volume-oscillating vascular compartments: contributions from oscillatory blood flow

机译:体积振荡的血管腔室的血氧饱和度:振荡血流的贡献

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We present a quantitative analysis of dynamic diffuse optical measurements to obtain oxygen saturation of hemoglobin in volume oscillating compartments. We used a phasor representation of oscillatory hemodynamics at the heart rate and respiration frequency to separate the oscillations of tissue concentrations of oxyhemoglobin (O) and deoxyhemoglobin (D) into components due to blood volume (subscript V) and blood flow (subscript F): O = O_V + O_F, D = D_V + D_F. This is achieved by setting the phase angle Arg(O_F) - Arg(O), which can be estimated by a hemodynamic model that we recently developed. We found this angle to be -72 deg for the cardiac pulsation at 1 Hz, and -7 deg for paced breathing at 0.1 Hz. Setting this angle, we can obtain the oxygen saturation of hemoglobin of the volume-oscillating vascular compartment, S_V = |O_V|/(|O_V| + |D_V|). We demonstrate this approach with cerebral near-infrared spectroscopy measurements on healthy volunteers at rest (n = 4) and during 0.1 Hz paced breathing (n = 3) with a 24-channel system. Rest data at the cardiac frequency were used to calculate the arterial saturation, S~((a)); over all subjects and channels, we found 〈S_V〉 = 〈S~((a))〉 = 0.96 ± 0.02. In the case of paced breathing, we found 〈S_V〉 = 0.66 ± 0.14, which reflects venous-dominated hemodynamics at the respiratory frequency.
机译:我们提出了动态漫射光学测量的定量分析,以获得在容积振荡室内血红蛋白的氧饱和度。我们使用在心率和呼吸频率下的振荡血液动力学的相量表示法将氧合血红蛋白(O)和脱氧血红蛋白(D)的组织浓度振荡根据血容量(下标V)和血流量(下标F)分为成分: O = O_V + O_F,D = D_V + D_F。这是通过设置相角Arg(O_F)-Arg(O)来实现的,这可以通过我们最近开发的血液动力学模型来估计。我们发现,对于1 Hz的心脏搏动,该角度为-72度,对于0.1 Hz的节奏呼吸,该角度为-7度。设置该角度,我们可以获得容积振荡的血管腔室的血红蛋白的氧饱和度,S_V = | O_V | /((| O_V | + | D_V |)。我们用健康的志愿者在静止(n = 4)和0.1 Hz定时呼吸(n = 3)期间使用24通道系统通过脑近红外光谱测量证明了这种方法。心脏频率下的静息数据用于计算动脉饱和度S〜((a));在所有主题和频道上,我们发现〈S_V〉 = 〈S〜((a))〉 = 0.96±0.02。在有规律的呼吸情况下,我们发现〈S_V〉 = 0.66±0.14,这反映了在呼吸频率下静脉为主的血液动力学。

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